论文标题
来自多个恒星系统KQVEL的无线电排放的发现和起源
Discovery and origin of the radio emission from the multiple stellar system KQVel
论文作者
论文摘要
KQVEL是一个二进制系统,该系统由具有未知性质的同伴组成。在本文中,我们报告了其无线电发射的检测。我们使用ATCA干涉仪(带名称:16cm,4cm和15mm)进行了多频广播活动。在所有频段中都检测到目标。对无线电发射的最明显解释是它起源于AP恒星的磁层,但这表明不可行。 AP恒星的已知恒星参数使我们能够利用早期型磁星的非热陀螺仪同顺ron发射的缩放关系。这是一个一般关系,证明了旋转支持带有离心机磁层的恒星的无线电发射。使用KQVEL的参数,预测的无线电亮度超过五个以上的幅度,低于测得的量度。极长的旋转周期排除了AP恒星作为观察到的无线电发射的来源。已经探索了KQVEL的无线电发射的其他可能解释,涉及其未知同伴。与观察到的特征(即无线电光度和频谱,与X射线相关的相关性)相匹配的场景是层次结构恒星系统,其中磁性星的可能伴侣是至少一个磁性活跃的后期型恒星的近距离二进制(可能是RSCVN类型)。要与系统的总质量兼容,最后一个场景对KQVEL恒星系统的轨道倾斜构成了强烈的限制。
KQVel is a binary system composed of a slowly rotating magnetic Ap star with a companion of unknown nature. In this paper, we report the detection of its radio emission. We conducted a multi-frequency radio campaign using the ATCA interferometer (band-names: 16cm, 4cm, and 15mm). The target was detected in all bands. The most obvious explanation for the radio emission is that it originates in the magnetosphere of the Ap star, but this is shown unfeasible. The known stellar parameters of the Ap star enable us to exploit the scaling relationship for non-thermal gyro-synchrotron emission from early-type magnetic stars. This is a general relation demonstrating how radio emission from stars with centrifugal magnetospheres is supported by rotation. Using KQVel's parameters the predicted radio luminosity is more than five orders of magnitudes lower than the measured one. The extremely long rotation period rules out the Ap star as the source of the observed radio emission. Other possible explanations for the radio emission from KQVel, involving its unknown companion, have been explored. A scenario that matches the observed features (i.e. radio luminosity and spectrum, correlation to X-rays) is a hierarchical stellar system, where the possible companion of the magnetic star is a close binary (possibly of RSCVn type) with at least one magnetically active late-type star. To be compatible with the total mass of the system, the last scenario places strong constraints on the orbital inclination of the KQVel stellar system.